|
|
||||||||
STARLING REVIEW |
UCSF Diabetes Center, Department of Microbiology and Immunology, University of California, San Francisco, California 94122-0534, USA
(Requests for offprints should be addressed to M T McManus; Email: mmcmanus{at}diabetes.ucsf.edu)
Abstract |
---|
Top Abstract Introduction History Biogenesis of miRNAs miRNAs: two mechanisms for... miRNA function miRNAs and endocrine biology Concluding remarks References |
---|
Introduction |
---|
Top Abstract Introduction History Biogenesis of miRNAs miRNAs: two mechanisms for... miRNA function miRNAs and endocrine biology Concluding remarks References |
---|
History |
---|
Top Abstract Introduction History Biogenesis of miRNAs miRNAs: two mechanisms for... miRNA function miRNAs and endocrine biology Concluding remarks References |
---|
Biogenesis of miRNAs |
---|
Top Abstract Introduction History Biogenesis of miRNAs miRNAs: two mechanisms for... miRNA function miRNAs and endocrine biology Concluding remarks References |
---|
|
miRNAs: two mechanisms for post-transciptional gene silencing |
---|
Top Abstract Introduction History Biogenesis of miRNAs miRNAs: two mechanisms for... miRNA function miRNAs and endocrine biology Concluding remarks References |
---|
miRNA function |
---|
Top Abstract Introduction History Biogenesis of miRNAs miRNAs: two mechanisms for... miRNA function miRNAs and endocrine biology Concluding remarks References |
---|
Recently, a group has found that pre-miRNAs can contain polymorphisms. In one instance a polymorphism in the mature miRNA sequence of miR-32c-2, which can potentially alter the biological function (Iwai & Naraba 2005). It will be important to determine whether this example constitutes a rare situation or if many miRNAs contain polymorphisms. If the latter is true, then the regulation of miRNAs may be as wildly complex as that seen in our protein encoding genes.
Despite all that is not known in vertebrates, much experimental data suggests the important roles miRNAs have, which is most prominently suggested by the lethality seen in Dicer knockout mice due to their inability to develop properly (Bernstein et al. 2003, Harfe et al. 2005, Yang et al. 2005). This data is augmented by the few mammalian miRNAs that have been characterized, the most recent being miR-122a, which is thought to play a role in the development of mouse testis (Yu et al. 2005), and others, such as miR-143, which has been proposed to regulate adipocyte differentiation (Esau et al. 2004, Yu et al. 2005).
miRNAs and endocrine biology |
---|
Top Abstract Introduction History Biogenesis of miRNAs miRNAs: two mechanisms for... miRNA function miRNAs and endocrine biology Concluding remarks References |
---|
|
In addition to miR-375, the authors found another 67 miRNAs expressed in ß-cells, and future studies should determine if these other miRNAs are involved in pancreatic ß-cell development or in the regulation of insulin production or secretion. Taken together, the study of these molecules in the pancreas may lead not only to enhanced understanding of diabetes pathophysiology and the development of treatments, but also to an increase in our understanding of pancreatic development and may thus aid in the development of better protocols to generate ß-cells in culture for transplantation.
Another miRNA that may play a role in endocrine function is miR-143, which has been proposed to play a role in adipocyte differentiation (Fig. 2B) (Esau et al. 2004). Investigators found that reducing the level of this miRNA by transfecting 2'-O-methoxyethyl phosphorothioate-modified antisense RNA oligonucleotides into human pre-adipocytes in vitro inhibited their differentiation, as determined by the decreased expression of 4 adipocyte-specific genes (GLUT4, HSL, fatty acid-binding protein aP2 and PPAR-2) and their inability to accumulate triglycerides. Computationally, miR-143 has been predicted to have several targets (Lewis et al. 2003), and the authors determined that knockdown of miR-143 led to upregulation of one of the predicted targets, ERK5/BMK1. ERK5 is thought to promote cell growth and proliferation, which is consistent with the phenotype observed (inhibition of differentiation), but it still remains to be determined whether other targets of miR-143 also contribute to the phenotype. In addition to miR-143 having a proposed role in human adipocyte differentiation, another miRNA, miR-14, was found to regulate adipocyte droplet size and triacylglycerol levels in the fruit fly, Drosophila (Xu et al. 2003). Thus, miRNAs may be important regulators of fat metabolism in both flies and humans. Since excess adiposity is rampant in western countries, and contributes to several common diseases including type 2 diabetes, hypertension and coronary heart disease, new insights provided by the study of miRNAs in adipocyte biology and long-term energy storage could have a tremendous clinical impact.
While only a few miRNAs have been shown to play a role in endocrine biology, miRNAs have been predicted to target many genes important for proper endocrine function and metabolism. Many groups are working diligently to uncover the roles of these remarkable molecules. These studies will likely bring many more surprises, and encourage us to think about endocrine regulation in new ways.
Concluding remarks |
---|
Top Abstract Introduction History Biogenesis of miRNAs miRNAs: two mechanisms for... miRNA function miRNAs and endocrine biology Concluding remarks References |
---|
Acknowledgements |
---|
References |
---|
Top Abstract Introduction History Biogenesis of miRNAs miRNAs: two mechanisms for... miRNA function miRNAs and endocrine biology Concluding remarks References |
---|
Berezikov E, Guryev V, van de Belt J, Wienholds E, Plasterk RH & Cuppen E 2005 Phylogenetic shadowing and computational identification of human microRNA genes. Cell 120 2124.[CrossRef][ISI][Medline]
Bernstein E, Caudy AA, Hammond SM & Hannon GJ 2001 Role for a bidentate ribonuclease in the initiation step of RNA interference. Nature 409 363366.[CrossRef][Medline]
Bernstein E, Kim SY, Carmell MA, Murchison EP, Alcorn H, Li MZ, Mills AA, Elledge SJ, Anderson KV & Hannon GJ 2003 Dicer is essential for mouse development. Nature Genetics 35 215217.[CrossRef][ISI][Medline]
Bottcher Y, Kovacs P, Tonjes A & Stumvoll M 2005 Genetics of type 2 diabetes. Internist 46 741749.[Medline]
Brown JR & Sanseau P 2005 A computational view of microRNAs and their targets. Drug Discovery Today 10 595601.[CrossRef][ISI][Medline]
Cai X, Hagedorn CH & Cullen BR 2004 Human microRNAs are processed from capped, polyadenylated transcripts that can also function as mRNAs. RNA 10 19571966.
Calin GA, Liu CG, Sevignani C, Ferracin M, Felli N, Dumitru CD, Shimizu M, Cimmino A, Zupo S, Dono M, DellAquila ML, Alder H, Rassenti L, Kipps TJ, Bullrich F, Negrini M & Croce CM 2004 MicroRNA profiling reveals distinct signatures in B cell chronic lymphocytic leukemias. PNAS 101 1175511760.
Chen CZ & Lodish HF 2005 MicroRNAs as regulators of mammalian hematopoiesis. Seminars in Immunology 17 155165.[CrossRef][ISI][Medline]
Cullen BR 2004 Transcription and processing of human microRNA precursors. Molecular Cell 16 861865.[CrossRef][ISI][Medline]
Doench JG & Sharp PA 2004 Specificity of microRNA target selection in translational repression. Genes and Development 18 504511.
Esau C, Kang X, Peralta E, Hanson E, Marcusson EG, Ravichandran LV, Sun Y, Koo S, Perera RJ, Jain R, Dean NM, Freier SM, Bennett F, Lollo B & Griffey R 2004 MicroRNA-143 regulates adipocyte differentiation. Journal of Biological Chemistry 279 5236152365.
Hamilton AJ & Baulcombe DC 1999 A species of small antisense RNA in posttranscriptional gene silencing in plants. Science 286 950952.
Harfe BD, McManus MT, Mansfield JH, Hornstein E & Tabin CJ 2005 The RNaseIII enzyme Dicer is required for morphogenesis but not patterning of the vertebrate limb. PNAS 102 1089810903.
He L & Hannon GJ 2004 MicroRNAs: small RNAs with a big role in gene regulation. Nature Reviews Genetics 5 522531.[CrossRef][Medline]
He L, Thomson JM, Hemann MT, Hernando-Monge E, Mu D, Goodson S, Powers S, Cordon-Cardo C, Lowe SW, Hannon GJ & Hammond SM 2005 A microRNA polycistron as a potential human oncogene. Nature 435 828833.[CrossRef][Medline]
Iwai N & Naraba H 2005 Polymorphisms in human pre-miRNAs. Biochemical and Biophysical Research Communications 331 14391444.[CrossRef][ISI][Medline]
Johnson SM, Grosshans H, Shingara J, Byram M, Jarvis R, Cheng A, Labourier E, Reinert KL, Brown D & Slack EJ 2005 RAS is regulated by the let-7 microRNA family. Cell 120 635647.[CrossRef][ISI][Medline]
Karube Y, Tanaka H, Osada H, Tomida S, Tatematsu Y, Yanagisawa K, Yatabe Y, Takamizawa J, Miyoshi S, Mitsudomi T & Takahashi T 2005 Reduced expression of Dicer associated with poor prognosis in lung cancer patients. Cancer Science 96 111115.[CrossRef][Medline]
Khvorova A, Reynolds A & Jayasena SD 2003 Functional siRNAs and miRNAs exhibit strand bias. Cell 115 209216.[CrossRef][ISI][Medline]
Kim VN 2005 MicroRNA biogenesis: coordinated cropping and dicing. Nature Reviews. Molecular Cell Biology 6 376385.[CrossRef][ISI][Medline]
Lagos-Quintana M, Rauhut R, Lendeckel W & Tuschl T 2001 Identification of novel genes coding for small expressed RNAs. Science 294 853858.
Landthaler M, Yalcin A & Tuschl T 2004 The human DiGeorge syndrome critical region gene 8 and its D. melanogaster homolog are required for miRNA biogenesis. Current Biology 14 21622167.[CrossRef][ISI][Medline]
Lau NC, Lim LP, Weinstein EG & Bartel DP 2001 An abundant class of tiny RNAs with probable regulatory roles in Caenorhabditis elegans. Science 294 858862.
Lee RC & Ambros V 2001 An extensive class of small RNAs in Caenorhabditis elegans. Science 294 862864.
Lee RC, Feinbaum RL & Ambros V 1993 The C. elegans heterochronic gene lin-4 encodes small RNAs with antisense complementarity to lin-14. Cell 75 843854.[CrossRef][ISI][Medline]
Lee Y, Jeon K, Lee JT, Kim S & Kim VN 2002 MicroRNA maturation: stepwise processing and subcellular localization. EMBO Journal 21 46634670.[CrossRef][ISI][Medline]
Lee Y, Ahn C, Han J, Choi H, Kim J, Yim J, Lee J, Provost P, Radmark O, Kim S & Kim VN 2003 The nuclear RNase III Drosha initiates microRNA processing. Nature 425 415419.[CrossRef][Medline]
Lee Y, Kim M, Han J, Yeom KH, Lee S, Baek SH & Kim VN 2004 MicroRNA genes are transcribed by RNA polymerase II. EMBO Journal 23 40514060.[CrossRef][ISI][Medline]
Lewis BP, Shih IH, Jones-Rhoades MW, Bartel DP & Burge CB 2003 Prediction of mammalian microRNA targets. Cell 115 787798.[CrossRef][ISI][Medline]
Liu CG, Calin GA, Meloon B, Gamliel N, Sevignani C, Ferracin M, Dumitru CD, Shimizu M, Zupo S, Dono M, Alder H, Bullrich F, Negrini M & Croce CM 2004a An oligonucleotide microchip for genome- wide microRNA profiling in human and mouse tissues. PNAS 101 97409744.
Liu J, Carmell MA, Rivas FV, Marsden CG, Thomson JM, Song JJ, Hammond SM, Joshua-Tor L & Hannon GJ 2004b Argonaute2 is the catalytic engine of mammalian RNAi. Science 305 14371441.
Lu J, Getz G, Miska EA, Alvarez-Saavedra E, Lamb J, Peck D, Sweet-Cordero A, Ebert BL, Mak RH, Ferrando AA, Dawning JR, Jacks T, Horvitz HR & Golub TR 2005 MicroRNA expression profiles classify human cancers. Nature 435 834838.[CrossRef][Medline]
Lund E, Guttinger S, Calado A, Dahlberg JE & Kutay U 2004 Nuclear export of microRNA precursors. Science 303 9598.
Mansfield JH, Harfe BD, Nissen R, Obenauer J, Srineel J, Chaudhuri A, Farzan-Kashani R, Zuker M, Pasquinelli AE, Ruvkun G, Sharp PA, Tabin CJ & McManus MT 2004 MicroRNA-responsive sensor transgenes uncover Hox-like and other developmentally regulated patterns of vertebrate microRNA expression. Nature Genetics 36 10791083.[CrossRef][ISI][Medline]
McManus MT 2004 Small RNAs and immunity. Immunity 21 747756.[CrossRef][ISI][Medline]
Meister G, Landthaler M, Patkaniowska A, Dorsett Y, Teng G & Tuschl T 2004 Human Argonaute2 mediates RNA cleavage targeted by miRNAs and siRNAs. Molecular Cell 15 185197.[CrossRef][ISI][Medline]
Metzler M, Wilda M, Busch K, Viehmann S & Borkhardt A 2004 High expression of precursor microRNA-155/BIC RNA in children with Burkitt lymphoma. Genes, Chromosomes and Cancer 39 167169.[CrossRef][ISI][Medline]
ODonnell KA, Wentzel EA, Zeller KI, Dang CV & Mendell JT 2005 c-Myc-regulated microRNAs modulate E2F1 expression. Nature 435 839843.[CrossRef][Medline]
Okamura K, Ishizuka A, Siomi H & Siomi MC 2004 Distinct roles for Argonaute proteins in small RNA-directed RNA cleavage pathways. Genes and Development 18 16551666.
Pasquinelli AE, Reinhart BJ, Slack F, Martindale MQ, Kuroda MI, Maller B, Hayward DC, Ball EE, Degnan B, Muller P, Spring J, Srinivasan A, Fishman M, Finnerty J, Corbo J, Levine M, Leahy P, Davidson E & Ruvkun G 2000 Conservation of the sequence and temporal expression of let-7 heterochronic regulatory RNA. Nature 408 8689.[CrossRef][Medline]
Poy MN, Eliasson L, Krutzfeldt J, Kuwajima S, Ma X, Macdonald PE, Pfeffer S, Tuschl T, Rajewsky N, Rorsman P & Stoffel M 2004 A pancreatic islet-specific microRNA regulates insulin secretion. Nature 432 226230.[CrossRef][Medline]
Reinhart BJ, Slack FJ, Basson M, Pasquinelli AE, Bettinger JC, Rougvie AE, Horvitz HR & Ruvkun G 2000 The 21-nucleotide let-7 RNA regulates developmental timing in Caenorhabditis elegans. Nature 403 901906.[CrossRef][Medline]
Rhoades MW, Reinhart BJ, Lim LP, Burge CB, Bartel B & Bartel DP 2002 Prediction of plant microRNA targets. Cell 110 513520.[CrossRef][ISI][Medline]
Robertson RP, Harmon J, Tran PO, Tanaka Y & Takahashi H 2003 Glucose toxicity in beta-cells: type 2 diabetes, good radicals gone bad, and the glutathione connection. Diabetes 52 581587.
Schwarz DS, Hutvagner G, Du T, Xu Z, Aronin N & Zamore PD 2003 Asymmetry in the assembly of the RNAi enzyme complex. Cell 115 199208.[CrossRef][ISI][Medline]
Smirnova L, Grafe A, Seiler A, Schumacher S, Nitsch R & Wulczyn FG 2005 Regulation of miRNA expression during neural cell specification. European Journal of Neuroscience 21 14691477.[ISI][Medline]
Stumvoll M, Goldstein BJ & van Haeften TW 2005 Type 2 diabetes: principles of pathogenesis and therapy. Lancet 365 13331346.[CrossRef][ISI][Medline]
Takamizawa J, Konishi H, Yanagisawa K, Tomida S, Osada H, Endoh H, Harano T, Yatabe Y, Nagino M, Nimura Y, Mitsudami T & Takahashi T 2004 Reduced expression of the let-7 microRNAs in human lung cancers in association with shortened postoperative survival. Cancer Research 64 37533756.
Tang G 2005 siRNA and miRNA: an insight into RISCs. Trends in Biochemical Sciences 30 106114.[CrossRef][ISI][Medline]
Tuschl T, Zamore PD, Lehmann R, Bartel DP & Sharp PA 1999 Targeted mRNA degradation by double-stranded RNA in vitro. Genes and Development 13 31913197.
Wallace TM & Matthews DR 2002 Coefficient of failure: a methodology for examining longitudinal beta-cell function in type 2 diabetes. Diabetic Medicine 19 465469.
Xu P, Vernooy SY, Guo M & Hay BA 2003 The Drosophila microRNA Mir-14 suppresses cell death and is required for normal fat metabolism. Current Biology 13 790795.[CrossRef][ISI][Medline]
Yang WJ, Yang DD, Na S, Sandusky GE, Zhang Q & Zhao G 2005 Dicer is required for embryonic angiogenesis during mouse development. Journal of Biological Chemistry 280 93309335.
Yekta S, Shih IH & Bartel DP 2004 MicroRNA-directed cleavage of HOXB8 mRNA. Science 304 594596.
Yi R, Qin Y, Macara IG & Cullen BR 2003 Exportin-5 mediates the nuclear export of pre-microRNAs and short hairpin RNAs. Genes and Development 17 30113016.
Yu Z, Raabe T & Hecht NB 2005 MicroRNA122a reduces expression of the post-transcriptionally regulated germ cell transition protein 2 (Tnp2) messenger RNA (mRNA) by mRNA cleavage. Biology of Reproduction 73 427433.
Zeng Y, Wagner EJ & Cullen BR 2002 Both natural and designed micro RNAs can inhibit the expression of cognate mRNAs when expressed in human cells. Molecular Cell 9 13271333.[CrossRef][ISI][Medline]
Zimmet P, Alberti KG & Shaw J 2001 Global and societal implications of the diabetes epidemic. Nature 414 782787.[CrossRef][Medline]
Received in final form 31 August 2005
Accepted 2 September 2005
This article has been cited by other articles:
|
A. Cohen, M. Shmoish, L. Levi, U. Cheruti, B. Levavi-Sivan, and E. Lubzens Alterations in Micro-Ribonucleic Acid Expression Profiles Reveal a Novel Pathway for Estrogen Regulation Endocrinology, April 1, 2008; 149(4): 1687 - 1696. [Abstract] [Full Text] [PDF] |
||||
|
X. Tang, J. Gal, X. Zhuang, W. Wang, H. Zhu, and G. Tang A simple array platform for microRNA analysis and its application in mouse tissues RNA, October 1, 2007; 13(10): 1803 - 1822. [Abstract] [Full Text] [PDF] |
||||
|
J. M. Mazzarelli, J. Brestelli, R. K. Gorski, J. Liu, E. Manduchi, D. F. Pinney, J. Schug, P. White, K. H. Kaestner, and C. J. Stoeckert Jr EPConDB: a web resource for gene expression related to pancreatic development, beta-cell function and diabetes Nucleic Acids Res., January 12, 2007; 35(suppl_1): D751 - D755. [Abstract] [Full Text] [PDF] |
||||
|
HOME | HELP | CONTACT US | SUBSCRIPTIONS | ARCHIVE | SEARCH | TABLE OF CONTENTS |